ABSTRACT In this work, an unsteady state analysis of the compression cycle of a small hermetic reciprocating compressor for domestic refrigeration was carried out. The mass and energy balances were applied to the refrigerant inside the cylinder in order to determine the mass and temperature behaviour through the compression process. A specific one-dimensional model of the valves was developed to calculate the mass flow rates that were processed. The compression cycle unsteady state analysis was inserted into a traditional steady state model of the compressor to evaluate the combined effect of the heat transfer inside the cylinder and the valve dynamics on compressor performance and efficiency. The whole simulation code was validated against the experimental measurements carried out on an R134a commercial unit in a wide range of operative conditions. INTRODUCTION The performance of a small hermetic reciprocating compressor is greatly affected by the heat transfer inside the cylinder during the compression cycle and by the valve dynamics. The evaluation of the heat transfer between the refrigerant and the cylinder wall requires an unsteady state analysis of the compression cycle as suggested by Todescat et al. 1992. This analysis may be complicated by the phase lag between the heat transfer and the temperature difference which is due to the simultaneous heat and work transfer as illustrated by Fagotti et al. 1998. The study of valve dynamics involves the evaluation of the mass and stiffness parameters and the analysis of the unsteady state flow through the valves. The most relevant unsteady state effects in refrigerant flow through the valves are those of the inertia of the refrigerant stream, which produces a time delay between the pressure variation and the relative velocity change, and the work transfer between the refrigerant flow and the valve plate. The latter modifies the kinetic energy and, hence, the velocity of the refrigerant flow, as shown by Boswirth 1984 and 1990. In this work, an unsteady state analysis of the compression cycle was inserted into a traditional steady state model of the compressor (Cavallini et al. 1996) in order to evaluate the combined effect of the heat transfer inside the cylinder and the valve dynamics on compressor performance and efficiency.
[1]
Alvaro T. Prata,et al.
Thermal Energy Analysis in Reciprocating Hermetic Compressors
,
1992
.
[2]
F. Fagotti,et al.
A New Correlation for Instantaneous Heat Transfer Between Gas and Cylinder in Reciprocating Compressors
,
1998
.
[3]
L. Boswirth.
A Model for Valve Flow Taking Non-Steady Flow into Account, Part II
,
1984
.
[4]
J. J. Jacobs.
Analytic and Experimental Techniques for Evaluating Compressor Performance Losses
,
1976
.
[5]
W. J. D. Annand,et al.
Heat Transfer in the Cylinders of Reciprocating Internal Combustion Engines
,
1963
.
[6]
Alberto Cavallini,et al.
Thermal Analysis of a Hermetic Reciprocating Compressor
,
1996
.